Changes in ion channel expression accompany cell cycle progression of spinal cord astrocytes

S N MacFarlane1, H Sontheimer

  • 1Department of Neurobiology, University of Alabama, Birmingham, Alabama, USA. macfarlan@nrc.uab.edu

Glia
|March 1, 2000
PubMed

Insights

Cell cycle arrest in spinal cord astrocytes alters ion channel expression. Downregulation of inwardly rectifying K(+) currents (IK(IR)) promotes proliferation, while their reappearance is critical for cell cycle progression.

Area of Science:

  • Neuroscience
  • Cell Biology
  • Astrocytes

Background:

  • Astrocytes play crucial roles in the central nervous system.
  • Ion channel expression in astrocytes is dynamic and can change with cell state.
  • Understanding astrocyte cell cycle regulation is vital for neurodevelopment and repair.

Purpose of the Study:

  • To investigate the relationship between astrocyte cell cycle progression and ion channel expression.
  • To determine the role of specific potassium (K+) and sodium (Na+) currents in astrocyte cell cycle control.

Main Methods:

  • Astrocytes were arrested at specific cell cycle phases (G1/G0, S, G2/M) using pharmacological agents (all-trans-retinoic acid, ara-C, Aphidicolin).
  • Voltage-activated Na+ and K+ currents were measured using electrophysiological techniques.
  • Pharmacological blockers (TEA, 4AP, BaCl2, TTX) and membrane potential modifiers (ouabain, altered extracellular potassium) were used to assess current function and cell cycle effects.

Main Results:

  • Arrest in G1/G0 induced premature inwardly rectifying K+ currents (IK(IR)).
  • Arrest in S phase increased delayed outwardly rectifying K+ currents (IK(D)) and decreased IK(IR).
  • IK(D) blockade caused G0/G1 arrest, while IK(IR) inhibition increased proliferation and S phase entry.
  • Na+ currents (INa+) increased in S phase-arrested cells, but TTX blockade had no effect on cell cycle progression.
  • Membrane depolarization or increased intracellular sodium promoted S phase entry in quiescent astrocytes.

Conclusions:

  • Ion channel activity, particularly K+ currents, significantly influences astrocyte cell cycle progression.
  • Downregulation of IK(IR) facilitates entry into and progression through the cell cycle.
  • Reappearance of IK(IR) may be essential for exiting the cell cycle after DNA synthesis.
  • Membrane potential and intracellular sodium levels are critical regulators of astrocyte proliferation.

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